Academic literature on the topic 'Offshore environment'
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Journal articles on the topic "Offshore environment"
Zachary, S., G. Feld, G. Ward, and J. Wolfram. "Multivariate extrapolation in the offshore environment." Applied Ocean Research 20, no. 5 (October 1998): 273–95. http://dx.doi.org/10.1016/s0141-1187(98)00027-3.
Full textEllermann, Katrin. "The random environment of offshore systems." PAMM 6, no. 1 (December 2006): 663–64. http://dx.doi.org/10.1002/pamm.200610312.
Full textTucker, Sarah J., Kelle C. Freel, Elizabeth A. Monaghan, Clarisse E. S. Sullivan, Oscar Ramfelt, Yoshimi M. Rii, and Michael S. Rappé. "Spatial and temporal dynamics of SAR11 marine bacteria across a nearshore to offshore transect in the tropical Pacific Ocean." PeerJ 9 (November 4, 2021): e12274. http://dx.doi.org/10.7717/peerj.12274.
Full textMishra, Debasisha, and Biswajit Mahanty. "A study of software development project cost, schedule and quality by outsourcing to low cost destination." Journal of Enterprise Information Management 29, no. 3 (April 11, 2016): 454–78. http://dx.doi.org/10.1108/jeim-08-2014-0080.
Full textGovindarajan, Suresh Kumar, Avanish Mishra, and Abhishek Kumar. "OIL SPILL IN A MARINE ENVIRONMENT: REQUIREMENTS FOLLOWING AN OFFSHORE OIL SPILL." Rudarsko-geološko-naftni zbornik 36, no. 4 (2021): 1–9. http://dx.doi.org/10.17794/rgn.2021.4.1.
Full textEDWARD, N. S. "Work-based Learning in an Offshore Environment." European Journal of Engineering Education 18, no. 2 (January 1993): 207–12. http://dx.doi.org/10.1080/03043799308923235.
Full textAppiott, Joseph, Amardeep Dhanju, and Biliana Cicin-Sain. "Encouraging renewable energy in the offshore environment." Ocean & Coastal Management 90 (March 2014): 58–64. http://dx.doi.org/10.1016/j.ocecoaman.2013.11.001.
Full textBitner-Gregersen, Elzbieta M., and øistein Hagen. "Uncertainties in data for the offshore environment." Structural Safety 7, no. 1 (January 1990): 11–34. http://dx.doi.org/10.1016/0167-4730(90)90010-m.
Full textM, Halafawi. "The Impact of Marine Environment on Jackup Rig Stability." Petroleum & Petrochemical Engineering Journal 4, no. 4 (2020): 1–16. http://dx.doi.org/10.23880/ppej-16000238.
Full textJINDAL, NIDHI, AJOY KUMAR BISWAL, and KUMAR HEMANT SINGH. "Analytical Velocity Modeling In High Pore-Pressure Environment, Offshore East Coast of India." INTERNATIONAL JOURNAL OF EARTH SCIENCES AND ENGINEERING 10, no. 02 (April 26, 2017): 155–60. http://dx.doi.org/10.21276/ijee.2017.10.0202.
Full textDissertations / Theses on the topic "Offshore environment"
Fleming, Conor F. "Tidal turbine performance in the offshore environment." Thesis, University of Oxford, 2014. http://ora.ox.ac.uk/objects/uuid:f51fd313-1589-4e9c-98cc-ae6e64c1184b.
Full textCrawley, Francis Kynoch. "Optimisation and modelling of offshore safety and environment." Thesis, University of Strathclyde, 2004. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.288601.
Full textDavies, Graham John. "Numerical analysis of cables in the offshore environment." Master's thesis, University of Cape Town, 1988. http://hdl.handle.net/11427/8388.
Full textThe extraction of mineral resources from deep ocean waters has been made possible by the development of large compliant offshore structures. Mooring cables are crucial components in these offshore facilities and form the basis of this study. The aims of this thesis are: to provide a comprehensive review on all aspects of cables, to determine criteria for numerical modelling, and to ascertain the capabilities of the finite element method for cable analyses using the F.E. package ABAQUS. Difficulties associated with large sag cables arise as a result of their inherent flexibility which causes ill-conditioning of the stiffness matrices. Furthermore, the cable winding configuration causes a nonlinear stress-strain relationship, it's sagged geometry results in nonlinear strain-displacement relations, and the immersion in water leads to nonlinear fluid loadings arising from Morison's Equation as well as uncertainties in the fluid parameters. Various models, starting with the developed. Convergence difficulties basic catenary, have been at start-up, caused by a lack of stiffness in the transverse direction, are avoided by supporting the cable when applying loads. It is further established that numerical analyses of flexible structures are most stable in dynamic analyses and when under tension. In general both displacement based isoparametric and hybrid beam elements were found to be more reliable and applicable than truss elements. Cable whip, ocean floor contact and harmonic motions of cables were analysed. Finally a cable/tower interaction was modelled and subjected to a Stokes's wave. Conclusions and guidelines are presented based on the numerical experiments carried out in this study.
Shapovalova, Daria. "The effectiveness of the international environmental legal framework in protecting the Arctic environment in light of offshore oil and gas development." Thesis, University of Aberdeen, 2017. http://digitool.abdn.ac.uk:80/webclient/DeliveryManager?pid=236459.
Full textSide, Jonathan. "Offshore safety, environmental and fishery resource protection." Thesis, Heriot-Watt University, 1986. http://hdl.handle.net/10399/1073.
Full textBatt, C. "Optimising cathodic protection requirements for high strength steels in the marine environment." Thesis, Cranfield University, 2000. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.323886.
Full textLin, Qingping. "A virtual environment based telepresence system for assisting underwater navigation." Thesis, University of Strathclyde, 1997. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.297440.
Full textSANTOS, ISMAEL HUMBERTO FERREIRA DOS. "A COLLABORATIVE ENVIRONMENT FOR OFFSHORE ENGINEERING SIMULATIONS BASED ON VISUALIZATION AND WORKFLOW." PONTIFÍCIA UNIVERSIDADE CATÓLICA DO RIO DE JANEIRO, 2010. http://www.maxwell.vrac.puc-rio.br/Busca_etds.php?strSecao=resultado&nrSeq=29063@1.
Full textOs sistemas de produção de petróleo em águas profundas, incluindo as unidades flutuantes de produção (plataformas ou navios) e todos os equipamentos que participam da produção são atualmente projetados por complexos sistemas de modelagem computacional. Tais sistemas envolvem as áreas de cálculo estrutural, meteo-oceanografia (forças de correntes, ondas e ventos), hidrodinâmica, risers (tubos de aço rígidos ou flexíveis para levar o óleo do poço em sub-superfície até a unidade de produção), sistemas de ancoragem, equipamentos submarinos, fundações e avaliação de risco geológico-geotécnico. O projeto de uma nova unidade de produção é um processo longo e custoso, podendo durar anos e consumir centenas de milhões de dólares, dependendo da complexidade da unidade e da maturidade da tecnologia desenvolvida para tornar o projeto econômica e tecnicamente viável. Os projetos são conduzidos por diversos especialistas, por vezes geograficamente dispersos, gerando artefatos e resultados independentes, porém altamente inter-relacionados. A necessidade de colaboração é uma característica inerente aos projetos de unidades flutuantes de produção para águas profundas. A possibilidade de compartilhar informações entre usuários, controlar a execução de diferentes ferramentas de modelagem, visualizar e manipular modelos 3D virtuais em ambientes imersivos de Realidade Virtual vem empurrando os limites das atividades dos times na indústria do petróleo especialmente em Engenharia de Petróleo. O objetivo desta tese é o de fundamentar os princípios e equacionar os principais problemas para o desenvolvimento de um Ambiente Colaborativo para Engenharia, denominado CEE (Collaborative Engineering Environment), de forma a permitir a visualização colaborativa e interpretação dos resultados de simulações criadas nos projetos de engenharia, que em geral envolvem também diferentes especialidades. Devido à característica multidisciplinar dos projetos, a visualização colaborativa torna-se um componente de fundamental importância durante o ciclo de vida de projetos de engenharia, especialmente os da área de Engenharia Offshore, utilizada neste trabalho como caso de estudo. Propomos um ambiente integrado para visualização colaborativa a ser usado pelas equipes de engenheiros projetistas durante a execução e controle de projetos de engenharia complexos como é o caso dos projetos de unidades flutuantes de produção para águas profundas. Os requisitos do sistema foram levantados com o objetivo de permitir uma colaboração efetiva entre os participantes, criando um ambiente propício para discussão, validação, interpretação e documentação dos resultados das simulações executadas durante as fases de um projeto de engenharia. Para aumentar ainda mais a capacidade de interpretação e uma melhor compreensão dos resultados o suporte a visualização em ambientes imersivos 3D também esta disponibilizado na ferramenta de visualização utilizada, que foi especialmente adaptada para a área de Engenharia Offhore. Para atingir estes objetivos, propomos uma Arquitetura Orientada a Serviços para o CEE. Esta arquitetura é composta pela integração de diferentes tecnologias de Trabalho Colaborativo Auxiliado por Computador (CSCW), Realidade Virtual e Computação em Grade. Utiliza-se um sistema de Gerência de Workflows de Experimentos Científicos (ScWfMS), baseado em BPEL (Business Process Execution Language), para execução de simulações de engenharia em uma infra-estrutura de computação em grade subjacente e um sistema de Videoconferência (VCS) para suporte a colaboração de áudio e vídeo. Para a visualização dos resultados um sistema de visualização, especializado para Engenharia Offshore, ENVIRON, foi desenvolvido em conjunto com a equipe da PUC-Rio/TecGraf.
Deep-water production systems, including floating production units (platforms or ships) and all the equipments playing a part in the production process, are currently designed by means of complex computational modeling systems. Those systems involve the areas of structural calculus, meteo-oceanography (currents, waves and wind forces), hydrodynamics, risers (rigid or flexible steel pipes for carrying oil from the well in subsurface up to the production unit), mooring systems, submarine equipment, seabed foundations and Geologic/Geotechnical risk assessment. The project of a new production unit is a lengthy and expensive process, that can last many years and consume hundreds of million of dollars, depending on the complexity of the unit and how mature is the technology developed to make the project technically and economically feasible. Projects are conducted by diverse specialists, sometimes geographically distributed, yielding independent but highly interrelated artifacts and results. The need for collaboration is an inherent characteristic of deep-water floating production unit projects. The possibility to share information among users, control the execution of different modeling tools, visualize and manipulate virtual 3D models in immersive Virtual Reality (VR) environments is pushing the limits of teamwork activities in oil and gas industry especially in Offshore Engineering. The objective of this thesis is to establish the fundamental principles and address the main issues in the development of a Collaborative Environment for Engineering, named CEE (Collaborative Engineering Environment), in order to allow the collaborative visualization and interpretation of simulation results produced in engineering projects, which in general also involve different specialties. Due to the multidisciplinary characteristic of those projects, collaborative visualization becomes a key component during the life cycle of engineering projects, especially those in Offshore Engineering, used in this work as case of study. We propose an integrated collaborative environment to be used by project engineers teams during the execution and control of complex engineering projects, as is the case of the projects of deep-water floating production units. The system requirements were carefully compiled aiming to enable an effective collaboration among the participants, creating a suitable environment for discussing, validating, interpreting and documenting the results of the simulations executed during the different phases of an engineering project. To further improve the interpretation capacity and a better comprehension of results the support for immersive 3D visualization is also available in the visualization tool, especially tailored for the Offshore Engineering domain. In order to meet these goals, we devise a Service- Oriented Architecture (SOA) for CEE. This architecture is composed of the integration of different technologies of Computer Supported Collaborative Work (CSCW), Virtual Reality (VR) and Grid Computing (GC). We use a Scientific Workflow Management System (ScWfMS), based on BPEL (Business Process Execution Language), a Grid-enabled software infrastructure for executing engineering simulations, and a Video Conferencing system (VCS) to furnish audio and video collaboration. For visualizing the results, a VR visualization tool, specialized for Offshore Engineering, ENVIRON, has also been developed in conjunction with the PUC-Rio/TecGraf team.
Swetnam, D. "The influence of hyperbaric environment and procedures on the quality of underwater MMA welds." Thesis, Cranfield University, 1992. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.305444.
Full textAgostinho, Francisco José. "Development of high performance and efficient coating repair systems for offshore tropical marine environment." Master's thesis, University of Cape Town, 2018. http://hdl.handle.net/11427/27865.
Full textBooks on the topic "Offshore environment"
Association, United Kingdom Offshore Operators. Safeguarding the offshore environment. London: UKOOA, 1995.
Find full textPage, Robert A. Earthquake hazards in the offshore environment. Washington, D.C: U.S. G.P.O., 1985.
Find full textStrömberg, Per. The Mexican maquila industry and the environment: An overview of the issues. Mexico, DF: Naciones Unidas CEPAL/ECLAC, 2002.
Find full textArup, H. Hydrogen uptake in offshore steels under cathodic protection in the marine environment. Luxembourg: Commission of the European Communities, 1987.
Find full textJørgen, Fredsøe, ed. The mechanics of scour in the marine environment. River Edge, N.J: World Scientific, 2002.
Find full textOffice, General Accounting. Offshore oil and gas: Environmental studies program meets most user needs but changes needed : report to the chairman, Environment, Energy, and Natural Resources Subcommittee, Committee on Government Operations, House of Representatives. Washington, D.C: The Office, 1988.
Find full textexecutive, Health and safety. A guide to the integrity, workplace environment and miscellaneous aspects of the Offshore Installations and Wells (Design and Construction, etc) Regulations 1996: Guidance on regulations. Sudbury: HSE Books, 1996.
Find full textLondon), Offshore safety (Conference) (1992. Offshore safety: Protection of life and the environment : London, 20-21 May 1992. London: Published for the Institute of Marine Engineers by Marine Management (Holdings), 1992.
Find full textCorral, Carlos Montalvo. Costo ambiental del crecimiento industrial: El caso de la maquiladora eléctrica en Tijuana, B.C. México, D.F: Friedrich Ebert Stiftung, Representación en México, 1992.
Find full textBarsh, Russel Lawrence. Potential effects of OCS oil and gas activities on Oregon and Washington Indian tribes: Description of overall legal environment and legal status of 16 specified tribes. [Washington, D.C.]: U.S. Dept. of the Interior, Minerals Management Service, 1990.
Find full textBook chapters on the topic "Offshore environment"
Cradden, Lucy, Pauline Laporte Weywada, and Mairéad Atcheson. "The Offshore Environment." In Floating Offshore Wind Energy, 21–85. Cham: Springer International Publishing, 2016. http://dx.doi.org/10.1007/978-3-319-29398-1_2.
Full textSeverinsen, Greg. "Offshore Windfarms." In Handbook on Marine Environment Protection, 811–26. Cham: Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-60156-4_42.
Full textOchi, M. K. "Stochastic Description of Offshore Environment." In Water Wave Kinematics, 31–56. Dordrecht: Springer Netherlands, 1990. http://dx.doi.org/10.1007/978-94-009-0531-3_6.
Full textLaik, Sukumar. "Health, Safety and Environment." In Offshore Petroleum Drilling and Production, 561–608. Boca Raton : Taylor & Francis, a CRC title, part of the Taylor & Francis imprint, a member of the Taylor & Francis Group, the academic division of T&F Informa, plc, [2018]: CRC Press, 2018. http://dx.doi.org/10.1201/9781315157177-10.
Full textLaik, Sukumar. "Ocean Environment/Sea States." In Offshore Petroleum Drilling and Production, 81–106. Boca Raton : Taylor & Francis, a CRC title, part of the Taylor & Francis imprint, a member of the Taylor & Francis Group, the academic division of T&F Informa, plc, [2018]: CRC Press, 2018. http://dx.doi.org/10.1201/9781315157177-2.
Full textWeintrit, Adam. "Marine and Offshore Telematics Systems." In Telematics in the Transport Environment, 334–48. Berlin, Heidelberg: Springer Berlin Heidelberg, 2012. http://dx.doi.org/10.1007/978-3-642-34050-5_38.
Full textJessen, Henning. "Offshore Oil and Gas Exploitation." In Handbook on Marine Environment Protection, 683–93. Cham: Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-60156-4_35.
Full textLüdeke, Jens. "Exploitation of Offshore Wind Energy." In Handbook on Marine Environment Protection, 165–88. Cham: Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-60156-4_9.
Full textde la Rue, Colin, Charles B. Anderson, and Jonathan Hare. "Pollution from offshore operations and craft." In Shipping and the Environment, 283–336. 3rd ed. London: Informa Law from Routledge, 2022. http://dx.doi.org/10.4324/9780429243516-7.
Full textPatin, Stanislav. "Offshore Oil and Gas Production and Transportation." In Handbook on Marine Environment Protection, 149–64. Cham: Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-60156-4_8.
Full textConference papers on the topic "Offshore environment"
Pollestad, A., and T. Knutsen. "The Troll Environment." In Offshore Technology Conference. Offshore Technology Conference, 2005. http://dx.doi.org/10.4043/17114-ms.
Full textLi, Rennian, and Xin Wang. "Status and challenges for offshore wind energy." In Environment (ICMREE). IEEE, 2011. http://dx.doi.org/10.1109/icmree.2011.5930884.
Full textHenriksson, Anders, Asbjørn Wilhelmsen, and Tore Karlsen. "Pipelines in harsh environment." In Offshore Technology Conference. Offshore Technology Conference, 2004. http://dx.doi.org/10.4043/16557-ms.
Full textHay, E., and R. Adermann. "Thermite Sparking In The Offshore Environment." In Offshore Europe. Society of Petroleum Engineers, 1987. http://dx.doi.org/10.2118/16548-ms.
Full textKoman, B. "Open-Sea Terminal In Hostile Environment." In Offshore Technology Conference. Offshore Technology Conference, 1986. http://dx.doi.org/10.4043/5347-ms.
Full textBowles, L. G. "Geophysical Research and Our Marine Environment." In Offshore Technology Conference. Offshore Technology Conference, 1990. http://dx.doi.org/10.4043/6483-ms.
Full textLange, Frank, Kees Van Zandwijk, and Jan van der Graaf. "Offshore Pipeline Installation In Arctic Environment." In SPE Arctic and Extreme Environments Conference and Exhibition. Society of Petroleum Engineers, 2011. http://dx.doi.org/10.2118/149581-ms.
Full textOfurhie, M. A., A. O. Lufadeju, G. U. Agha, and G. C. Ineh. "Turbidite Depositional Environment In Deepwater Of Nigeria." In Offshore Technology Conference. Offshore Technology Conference, 2002. http://dx.doi.org/10.4043/14068-ms.
Full textSchroeder, Art J., and Emil Pena. "Energy and the Environment - a Global View." In Offshore Technology Conference. Offshore Technology Conference, 2002. http://dx.doi.org/10.4043/14335-ms.
Full textAlkindi, Azhar, Robert Prince Wright, Wesley Moore, John Walsh, Lee Morgenthaler, and Cor Kuijvenhoven. "Challenges for Waterflooding in a Deepwater Environment." In Offshore Technology Conference. Offshore Technology Conference, 2007. http://dx.doi.org/10.4043/18523-ms.
Full textReports on the topic "Offshore environment"
Pawlak, Geno, and Mark Merrifield. Effects of Offshore Forcing in the Nearshore Environment. Fort Belvoir, VA: Defense Technical Information Center, January 2008. http://dx.doi.org/10.21236/ada514889.
Full textDuberstein, Corey A., Jerry D. Tagestad, and Kyle B. Larson. Assessment of Technologies Used to Characterize Wildlife Populations in the Offshore Environment. Office of Scientific and Technical Information (OSTI), December 2011. http://dx.doi.org/10.2172/1076728.
Full textTucker F. Hentz, Lesli J. Wood, Michael V. DeAngelo, Hongliu Zeng, Mark H. Holtz, Shirley P. Dutton, Ke-Sheng Chan, et al. TARGETING RESERVE GROWTH OPPORTUNITIES IN THE NORTHERN GULF OF MEXICO BASIN: TRANSFERRING SECONDARY GAS RECOVERY TECHNOLOGY TO THE OFFSHORE ENVIRONMENT. Office of Scientific and Technical Information (OSTI), December 2002. http://dx.doi.org/10.2172/819391.
Full textAker, Pamela M., Anthony M. Jones, and Andrea E. Copping. Offshore Wind Turbines - Estimated Noise from Offshore Wind Turbine, Monhegan Island, Maine: Environmental Effects of Offshore Wind Energy Development. Office of Scientific and Technical Information (OSTI), November 2010. http://dx.doi.org/10.2172/1006308.
Full textStephen A. Holditch. Geomechanical Performance of Hydrate-Bearing Sediments in Offshore Environments. Office of Scientific and Technical Information (OSTI), December 2006. http://dx.doi.org/10.2172/900309.
Full textStephen Holditch, Tad Patzek, Jonny Rutqvist, George Moridis, and Richard Plumb. Geomechanical Performance of Hydrate-Bearing Sediment in Offshore Environments. Office of Scientific and Technical Information (OSTI), March 2008. http://dx.doi.org/10.2172/947014.
Full textZarillo, Gary, Sara Ramos, Kristopher Effinger, Kristen Becker, Irene Watts, Katherine Brutsché, Brian McFall, and Douglas Krafft. Evaluating cross-shore sediment grain size distribution, sediment transport, and morphological evolution of a nearshore berm at Fort Myers Beach, Florida. Engineer Research and Development Center (U.S.), March 2022. http://dx.doi.org/10.21079/11681/43780.
Full textAnderson, Richard M., Andrea E. Copping, Frances B. Van Cleve, Stephen D. Unwin, and Erin L. Hamilton. Conceptual Model of Offshore Wind Environmental Risk Evaluation System. Office of Scientific and Technical Information (OSTI), June 2010. http://dx.doi.org/10.2172/1000144.
Full textMiller, S. F., G. J. Kuecher, and B. E. Davies. Environmental geophysics, offshore Bush River Peninsula, Aberdeen Proving Ground, Maryland. Office of Scientific and Technical Information (OSTI), November 1995. http://dx.doi.org/10.2172/224262.
Full textCopping, Andrea E., Luke A. Hanna, R. Scott Butner, Thomas J. Carlson, Michele B. Halvorsen, Corey A. Duberstein, Shari Matzner, Jonathan M. Whiting, Kara M. Blake, and Jessica Stavole. Environmental Effects of Offshore Wind Development. Fiscal Year 2012 Progress Report. Office of Scientific and Technical Information (OSTI), September 2012. http://dx.doi.org/10.2172/1173059.
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